Skip to content
Open access

Engineering the bacterial cellulose-forming surface as a programmable protein recruitment interface

Jul 2026 · bioRxiv · 0 citations · 2 references
Biology

TL;DR

The material-forming bacterial surface is demonstrated as a programmable engineering interface for organizing extracellular proteins, providing a general strategy for engineering living materials.

Abstract

Synthetic biology has advanced microorganisms to be programmed as production hosts, but its application to bacteria that inherently assemble extracellular materials remains limited. Komagataeibacter spp., natively synthesizes cellulose at the bacterial cell surface, creating a material-forming interface that has not been used as a programmable recruitment platform. Here we establish cell-surface display in Komagataeibacter intermedius and show that this interface can recruit defined proteins, making functionalization part of cellulose formation. By engineering Lpp’OmpA, we displayed a fluorescent protein and genetically encoded capture modules (SpyTag and SilkTag) to selectively capture catcher-fused protein cargos onto K. intermedius cell surface. Recruitment of silk-derived structural protein before cellulose production generated silk-associated fibrous structures within the pellicles, with retained cargo signal after washing. The resulting biocomposite showed reorganized fibre-network morphology, increased surface hydrophobicity, mesoscale ordering, and improved wet-state compressive strength. Wild-type cells exposed to same conditions did not reproduce these changes, demonstrating that material properties arise from surface-directed recruitment rather than protein exposure alone. This work demonstrates the material-forming bacterial surface as a programmable engineering interface for organizing extracellular proteins, providing a general strategy for engineering living materials.

Read PDF

Similar papers

Aug 2026

Programmable biofunctionalization of bacterial cellulose via a dynamic co-culture platform.

Programmable biofunctionalization of bacterial cellulose (BC) is promising for constructing engineered living materials, but current microbial co-culture approaches struggle to combine coherent matrix formation, dynamic cultivation, and efficient matrix-associated protein functionalization. In this study, we report a p...

Fei Liu, Yan-Yi Wang, Bin Cui et al. · 0 citations
Open access Aug 2026

Turning a Natural Biopolymer-Binding Protein into a Plastic Surface-Recognizing Protein

Direct evolution is used to alter the substrate specificity of the archaeal chitin-binding protein PfChBD2 toward plastics, demonstrating CBMs as evolutionarily adaptable scaffolds capable of recognizing synthetic polymers and highlighting the potential of engineered CBM-based probes for microplastic detection, polymer...

Yoshihito Hashino, Mamiko Hirose, Akihiko Nakamura · 0 citations
Open access Aug 2026

Site-specific processing of phosphoethanolamine cellulose by the BcsZ cellulase reveals stochastic biofilm cellulose modification

Surprisingly, the periplasmic cellulase BcsZ, encoded in the cellulose biosynthesis operon, is necessary for efficient bacterial cellulose production and functions independently of the biosynthetic complex to clear mislocalized pEtN cellulose from the periplasm.

J. Rum, Jhih-Yi Huang, E. Kitova et al. · 0 citations
Open access Aug 2026

Engineering the interface: pH-dependent self-assembly of lysine-tyrosine synthetic copolypeptides for anti-biofilm implant coatings.

Developing resilient antimicrobial coatings for medical implants requires a sophisticated balance between direct bactericidal activity and resistance to bacterial adhesion. While poly(L-lysine) provides effective membrane disruption, its performance is often compromised by the accumulation of cellular debris, which fac...

Juhi Singh, Hunter B. Wood, Dharika Srikanth et al. · 0 citations
Review Open access Sep 2026

Designing nature's nanocarriers: advances and challenges in functionalizing bacterial extracellular vesicles.

Bacterial extracellular vesicles (bEVs) are nanoscale, membrane-bound particles naturally secreted by bacteria and are increasingly being explored as therapeutic carriers. Their small size, ability to encapsulate and protect cargo, inherent bioactivity, and compatibility make them attractive candidates for therapeutic...

Varun Kumar, Hannah C. Zierden, Sara Molinari · 0 citations
Open access Aug 2026

Aerolysin enables modular, non-genetic functionalization of living cell surfaces

Methods for installing synthetic functions on living cell surfaces provide powerful approaches for imaging, sensing, and manipulating cell behavior, but many require genetic modification of the target cell or chemical modification of the plasma membrane. Here, we repurpose the glycosylphosphatidylinositol-anchored prot...

Andrew L. Lemmex, M. Pawlak, Wendy R. Gordon · 0 citations

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.